Đáp án:
1/
$KCl +H_{2}SO_{4}đ \buildrel{{t^o}}\over\longrightarrow K_{2}SO_{4} +2HCl$
$2KCl +2H_{2}O \buildrel{{đpdd,cmn}}\over\longrightarrow 2KOH +Cl_{2} +H_{2}$
$2HCl \buildrel{{đpdd}}\over\longrightarrow H_{2}+Cl_{2}$
$MnO_{2} +2H_{2}SO_{4} +4KCl→ Cl_{2}+2H_{2}O +2K_{2}SO_{4} +MnCl_{2}$
$MnO_{2} +4HClđ \buildrel{{t^o}}\over\longrightarrow MnCl_{2} +Cl_{2} +2H_{2}O$
2/
$nC=nCaCO_{3}=\frac{5,5}{100}=0,055$
$80nCuO+223nPbO=10,23$
$2nCuO+2nPbO=0,22$
⇒$\left \{ {{nCuO=0,1} \atop {nPbO=0,01}} \right.$
$\%mCuO=\frac{0,1.80}{10,23}.100=78,2\%$
$\%mPbO=100-78,2=21,8\%$
3/
$nCO_{2}=\frac{5,6}{22,4}=0,25$
a/
$nNa_{2}CO_{3}=nCO_{2}=0,25$
$nNaOH=2nNa_{2}CO_{3}=0,25.2=0,5$
$VddNaOH=\frac{0,5}{0,2}=2,5lit$
$CM Na_{2}CO_{3}=\frac{0,25}{2,5}=0,1M$
b/
$nNaOH=nNaHCO_{3}=nCO_{2}=0,25$
$VddNaOH=\frac{0,25}{0,2}=1,25lit$
$CM NaHCO_{3}=\frac{0,25}{1,25}=0,2M$
c/
Nếu tạo cả 2 muối thì thể tích NaOH: 1,25-2.5
Giải thích các bước giải:
